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Human modified landscape structure and its implication on ecosystem services at Guder watershed in Ethiopia

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Abstract

We investigated the impacts of landscape structure changes on ecosystem services for Guder watershed. We first analyzed remotely sensed data of four decades (1973–2015). The raster data sets of land uses were used as an input in FRAGSTAT to analyze the magnitude of fragmentation. Furthermore, the locally modified ecosystem service values to estimate the ESVs for the watershed were used. Results indicated that grasslands, shrub land, and forest lands reduced by 83.5%, 48.5%, and 37.5%, whereas the corresponding increase was recorded for settlement and cultivated land by 572.2% and 7.1%. Fragmentation analysis showed an increase in class area (CA) for cultivated land and settlement, whereas number of patches (NP) rose for forest land, shrub land, grassland, settlement, and cultivated land signifying the extent of fragmentation. The overall ESVs of the watershed decreased due to the changes in landscape structure. We recommend the need to take in to account landscape-level watershed conservation to enhance ecosystem services.

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References

  • Abdullah, S. A., & Hezri, A. A. (2008). From forest landscape to agricultural landscape in the developing tropical country of Malaysia: pattern, process, and their significance on policy. Environmental Management, 42, 907–917.

    Google Scholar 

  • Arowolo, A. O., Deng, X., Olatunji, O. A., & Obayelu, A. E. (2018). Assessing changes in the value of ecosystem services in response to land-use/land-cover dynamics in Nigeria. Science of the Total Environment, 636, 597–609.

    CAS  Google Scholar 

  • Belay, H. (2011). Evaluation of climate change impacts on hydrology on selected catchments of Abbay Basin (pp. 97). MSc thesis, Addis Ababa University.

  • Bhagwat, S. (2014). In C. J. Kettle & L. P. Koh (Eds.), The history of deforestation and forest fragmentation: a global perspective, in: Global forest fragmentation (p. 190). Wallingford: CABI International.

    Google Scholar 

  • Bonilla-Bedoy, S., Molina, J. R., Macedo-Pezzopane, J. E., & Herrera-Machuca, M. A. (2014). Fragmentation patterns and systematic transitions of the forested landscape in the upper Amazon region, Ecuador 1990–2008. Journal of Forestry Research, 25(2), 301–309.

    Google Scholar 

  • Çakır, G., Sivrikaya, F., & Keleş, S. (2008). Forest cover change and fragmentation using Landsat data in Maçka State Forest Enterprise in Turkey. Environmental Monitoring and Assessment, 137, 51–66.

    Google Scholar 

  • Congalton, R. G. (1991). A review of assessing the accuracy of classifications of remotely sensed data. Remote Sensing of Environment, 37, 35–46.

    Google Scholar 

  • Costanza, R., d’Arge, R., de Groot, R., Farberk, S., Grasso, M., Hannon, B., Limburg, K., Naeem, S., O’Neill, R. V., Paruelo, J., Raskin, R. G., Suttonkk, P., & van den Belt, M. (1997). The value of the world’s ecosystem services and natural capital. Nature, 387, 253–260.

    CAS  Google Scholar 

  • Costanza, R., de Groot, R., Sutton, P., van der Ploeg, S., Anderson, S. J., Kubiszewski, I., Farber, S., & Turner, R. K. (2014). Changes in the global value of ecosystem services. Global Environmental Change, 26, 152–158.

    Google Scholar 

  • Crewett, W., Bogale, A., & Korf, B. (2008). Land tenure in Ethiopia: continuity and change, shifting rulers, and the quest for state control, CAPRi Working Paper 91. Washington, DC: International Food Policy Research Institute. https://doi.org/10.2499/CAPRiWP91.

    Book  Google Scholar 

  • CSA. (2008). Summary and statistical report of the 2007 population and housing census: Population size by age and sex. Ethiopia: Addis Ababa.

    Google Scholar 

  • Cushman, S. A., & McGarigal, K. (2002). Hierarchical, multi-scale decomposition of species-environment relationships. Landscape Ecology, 17, 637–646.

    Google Scholar 

  • Daye, D. D., & Healey, J. R. (2015). Impacts of land-use change on sacred forests at the landscape scale. Global Ecology and Conservation, 3, 349–358.

    Google Scholar 

  • de Freitas, M. W. D., dos Santos, J. R., & Alves, D. S. (2013). Land-use and land-cover change processes in the upper Uruguay Basin: Linking environmental and socioeconomic variables. Landscape Ecology, 28, 311–327.

    Google Scholar 

  • de Groot, R. S., Alkemade, R., Braat, L., Hein, L., & Willemen, L. (2010). Challenges in integrating the concept of ecosystem services and values in landscape planning, management and decision making. Ecological Complexity, 7, 260–272.

    Google Scholar 

  • Di Giulio, M., Holderegger, R., & Tobias, S. (2009). Effects of habitat and landscape fragmentation on humans and biodiversity in densely populated landscapes. Journal of Environmental Management, 90, 2959–2968.

    Google Scholar 

  • Elagouz, M. H., Abou-Shleel, S. M., Belal, A. A., & El-Mohandes, M. A. O. (2019). Detection of land use/cover change in Egyptian Nile Delta using remote sensing. The Egyptian Journal of Remote Sensing and Space Sciences. https://doi.org/10.1016/j.ejrs.2018.10.004.

  • Estoque, R. C., & Murayam, Y. (2016). Quantifying landscape pattern and ecosystem service value changes in four rapidly urbanizing hill stations of Southeast Asia. Landscape Ecology, 31, 1481–1507.

    Google Scholar 

  • FAO. (1995). Soils of EAST Africa, SEA, Food and Agriculture Organization of the United Nations. Rome: ACD-Rom Data.

    Google Scholar 

  • Federal Democratic Republic of Ethiopia (FDRE). (2010). Growth and transformation plan I (GTP I) (2010/11–2014/15) (p. 135). Ethiopia: Addis Ababa.

    Google Scholar 

  • Federal Democratic Republic of Ethiopia (FDRE). (2016). Growth and transformation plan II (GTP II) (2015/16–2019/20) (p. 236). Ethiopia: Addis Ababa.

    Google Scholar 

  • Gashaw, T., Tulu, T., Argaw, M., Worqlul, A. W., Tolessa, T., & Kindu, M. (2018). Estimating the impacts of land use/land cover changes on ecosystem service values: the case of the Andassa watershed in the Upper Blue Nile basin of Ethiopia. Ecosystem Services, 31, 219–228.

    Google Scholar 

  • Gebrehiwot, S. G., Bewket, W., Gӓrdenӓs, A. I., & Bishop, K. (2014). Forest cover change over four decades in the Blue Nile Basin, Ethiopia: comparison of three watersheds. Regional Environmental Change, 14, 253–266.

    Google Scholar 

  • Gebreselassie, S., Kirui, O. K., & Mirzabaev, A. (2016). Economics of land degradation and improvement in Ethiopia, in: Economics of land degradation and improvement—a global assessment for sustainable development. In E. Nkonya, et al. (Eds.). https://doi.org/10.1007/978-3-319-19168-3_14.

  • Guo, L. (2006). Analysis of spatio-temporal changes in the landscape pattern of the Taishan. Mountain. Journal of Mountain Ecology, 8, 1–6.

    Google Scholar 

  • Haddad, N. M., Brudvig, L. A., Clobert, J., Davies, K. F., Gonzalez, A., Holt, R. D., Lovejoy, T. E., Sexton, J. O., Austin, M. P., Collins, C. D., Cook, W. M., Damschen, E. I., Ewers, R. M., Foster, B. L., Jenkins, C. N., King, A. J., Laurance, W. F., Levey, D. J., Margules, C. R., Melbourne, B. A., Nicholls, A. O., Orrock, J. L., Song, D.-X., & Townshend, J. R. (2015). Habitat fragmentation and its lasting impact on Earth’s ecosystems. Science Advances, 1, e1500052.

    Google Scholar 

  • Hargis, C. D., Bissonette, J. A., & David, J. L. (1998). The behavior of landscape metrics commonly used in the study of habitat fragmentation. Landscape Ecology, 13, 167–186.

    Google Scholar 

  • Harrison, S., & Bruna, E. (1999). Habitat fragmentation and large-scale conservation: what do we know for sure? Ecography, 22, 225–232.

    Google Scholar 

  • Hartter, J., & Southworth, J. (2009). Dwindling resources and fragmentation of landscapes around parks: wetlands and forest patches around Kibale National Park, Uganda. Landscape Ecology, 24, 643–656.

    Google Scholar 

  • Hu, H., Liu, W., & Cao, M. (2008). Impact of land use and land cover changes on ecosystem services in Menglun, Xishuangbanna, Southwest China. Environmental Monitoring and Assessment, 146, 147–156.

    Google Scholar 

  • Jacob, M., Romeyns, L., Frankl, A., Asfaha, T., Beeckman, H., & Nyssen, J. (2015). Land use and cover dynamics since 1964 in the Afro-alpine vegetation belt: Lib Amba mountain in North Ethiopia. Land Degradation and Development, 27(3), 641–653.

    Google Scholar 

  • Jacob, M., Frankl, A., Hurni, H., Lanckriet, S., De Ridder, M., Guyassa, E., Beeckman, H., & Nyssen, J. (2017). Land cover dynamics in the Simien Mountains (Ethiopia), half a century after establishment of the National Park. Regional Environmental Change, 17, 777–787.

    Google Scholar 

  • Jessen, L. I. F., Frans, J. M., & Wel, V. D. (1994). Accuracy assessment of satellite derived land cover data: a review. Photogrammetric Engineering and Remote Sensing, 60, 410–432.

    Google Scholar 

  • Kidane, M., Tolessa, T., Bezie, A., Kessete, N., & Endrias, M. (2018). Evaluating the impacts of climate and land use/land cover (LU/LC) dynamics on the hydrological responses of the Upper Blue Nile in the central highlands of Ethiopia. Spatial Information Research. https://doi.org/10.1007/s41324-018-0222-y.

  • Kindu, M., Schneider, T., Teketay, D., & Knoke, T. (2013). Land use/land cover change analysis using object-based classification approach in Munessa-Shashemene landscape of the Ethiopian highlands. Remote Sensing, 5, 2411–2435.

    Google Scholar 

  • Kindu, M., Schneider, T., Teketay, D., & Knoke, T. (2016). Changes of ecosystem service values in response to land use/land cover dynamics in Munessa-Shashemene landscape of the Ethiopian highlands. The Science of the Total Environment, 547, 137–147.

    CAS  Google Scholar 

  • Kindu, M., Schneider, T., Dӧllerer, M., Teketay, D., & Knoke, T. (2018). Scenario modeling of land use/land covers changes in Munessa-Shashemene landscape of the Ethiopian highlands. The Science of the Total Environment, 622–623, 534–546.

    Google Scholar 

  • Leitão, A. B., & Ahren, J. (2002). Applying landscape ecological concepts and metrics in sustainable landscape planning. Landscape and Urban Planning, 59, 65–93.

    Google Scholar 

  • Li, R., Dong, M., Cui, J., Zhang, L., Cui, Q., & He, W. (2007). Quantification of the impact of land-use changes on ecosystem services: a case study in Pingbian County, China. Environmental Monitoring and Assessment, 128, 503–510.

    Google Scholar 

  • Liu, S., Dong, Y., Deng, L., Liu, Q., Zhao, H., & Dong, S. (2014). Forest fragmentation and landscape connectivity change associated with road network extension and city expansion: a case study in the Lancang River Valley. Ecological Indicators, 36, 160–168.

    Google Scholar 

  • McGarigal, K., & Marks, B. J. (1994). FRAGSTATS: Spatial pattern analysis program for quantifying landscape structure (p. 141). Corvallis: Oregon State University.

    Google Scholar 

  • McGarigal, K, Cushman, S. A., & Ene, E. (2012). FRAGSTATS v42.1: spatial pattern analysis program for categorical and continuous maps, Computer software program produced by the authors at the University of Massachusetts, Amherst. http://www.umass.edu/landeco/research/fragstats/fragstats.html. Accessed 5 Aug 2018.

  • Mengistu, D. A., Waktola, D. K., & Woldetsadik, M. (2012). Detection and analysis of land-use and land-cover changes in the Midwest escarpment of the Ethiopian Rift Valley. Journal of Land Use Science, 7(3), 239–260.

    Google Scholar 

  • Millennium Ecosystem Assessment (MA). (2005). Ecosystems and human well-being: a framework for assessment. Washington: Island Press.

    Google Scholar 

  • Mohammed, A. J., & Inoue, M. (2014). Land tenure reform and its implication for the forest: case study from Oromia regional state of Ethiopia. Journal of Forest and Environmental Science, 30(4), 393–404.

    Google Scholar 

  • Moreno-Sanchez, R., Moreno-Sanchez, F., & Torres-Rojo, J. M. (2011). National assessment of the evolution of forest fragmentation in Mexico. Journal of Forestry Research, 22(2), 167–174.

    CAS  Google Scholar 

  • Nagendra, H., Munroe, D. K., & Southworth, J. (2004). From pattern to process: landscape fragmentation and the analysis of land use/land cover change. Agriculture, Ecosystems and Environment, 101, 111–115.

    Google Scholar 

  • Niquisse, S., Cabral, P., Rodrigues, Â., & Augusto, G. (2017). Ecosystem services and biodiversity trends in Mozambique as a consequence of land cover change. International Journal of Biodiversity Science, Ecosystem Services & Management, 13(1), 297–311.

    Google Scholar 

  • Oestreicher, J. S., Farella, N., Paquet, S., Davidson, R., Lucotte, M., Mertens, F., & Saint-Charles, J. (2014). Livelihood activities and land-use at a riparian frontier of the Brazilian Amazon: quantitative characterization and qualitative insights into the influence of knowledge, values, and beliefs. Human Ecology, 42, 521–540.

    Google Scholar 

  • Ottaway, M. (1977). Land reform in Ethiopia 1974–1977. African Studies Review, 20(3), 79–90.

    Google Scholar 

  • Pinto-Ledezma, J. N., & Rivero-Mamani, M. L. (2014). Temporal patterns of deforestation and fragmentation in lowland Bolivia: implications for climate change. Climatic Change, 127(1), 43–54.

    Google Scholar 

  • Qi, Z.-F., Ye, X.-Y., Zhang, H., & Yu, Z.-L. (2014). Land fragmentation and variation of ecosystem services in the context of rapid urbanization: the case of Taizhou City, China. Stochastic Environmental Research and Risk Assessment, 28, 843–855.

    Google Scholar 

  • Qiu, L., Pan, Y., Zhu, J., Amable, G. S., & Xu, B. (2019). Integrated analysis of urbanization-triggered land use change trajectory and implications for ecological land management: a case study in Fuyang, China. Science of the Total Environment, 660, 209–217.

    CAS  Google Scholar 

  • Reddy, C. S., Jha, C. S., & Dadhwal, V. K. (2013). Assessment and monitoring of long-term forest cover changes in Odisha, India using remote sensing and GIS. Environmental Monitoring and Assessment, 185, 4399–4415.

    Google Scholar 

  • Ribeiro, M. C., Metzger, J. P., Martensen, A. C., Ponzoni, F. J., & Hirota, M. M. (2009). The Brazilian Atlantic Forest: how much is left, and how is the remaining forest distributed? Implications for conservation. Biological Conservation, 142, 1141–1153.

    Google Scholar 

  • Rutledge, D. (2003). Landscape indices as measures of the effects of fragmentation: can pattern reflect process? Doc science internal series 98 (pp. 26). Department of Conservation Wellington, New Zealand. http://www.doc.govt.nz. Accessed 5 Aug 2018.

  • Sharma, M., Areendran, G., Raj, K., Sharma, A., & Joshi, P. K. (2016). Multitemporal analysis of forest fragmentation in Hindu Kush Himalaya—a case studies from Khangchendzonga Biosphere Reserve, Sikkim, India. Environmental Monitoring and Assessment, 188, 596. https://doi.org/10.1007/s10661-016-5577-8.

    Article  Google Scholar 

  • Sheng-yan, D., Le-xiang, Q., Xin-xiang, C., Shuang, L., & Hao-min, L. (2003). Forest landscape pattern dynamics of Luoning County in Henan Province and its driving forces. Chinese Geographical Science, 13(3), 247–253.

    Google Scholar 

  • Shifaw, E., Sha, J., Li, X., Bao, Z., & Zhou, Z. (2019). An insight into land-cover changes and their impacts on ecosystem services before and after the implementation of a comprehensive experimental zone plan in Pingtan Island, China. Land Use Policy, 82, 631–642.

    Google Scholar 

  • Shrestha, M. K., York, A. M., Boone, C. G., & Zhang, S. (2012). Land fragmentation due to rapid urbanization in the Phoenix metropolitan area: analyzing the spatiotemporal patterns and drivers. Applied Geography, 32, 522–531.

    Google Scholar 

  • Su, S., Xiao, R., Jiang, Z., & Zhang, Y. (2012). Characterizing landscape pattern and ecosystem service value changes for urbanization impacts at an eco-regional scale. Applied Geography, 34, 295–305.

    Google Scholar 

  • Tapia-Armijos, M. F., Homeier, J., Espinosa, C. I., Leuschner, C., & de la Cruz, M. (2015). Deforestation and forest fragmentation in South Ecuador since the 1970s—losing a hotspot of biodiversity. PLoS One, 10(9), e0133701. https://doi.org/10.1371/journal.pone.0133701.

    Article  CAS  Google Scholar 

  • Tefera, B., & Sterk, G. (2008). Hydropower-induced land use change in Fincha’a watershed, Western Ethiopia: analysis and impacts. Mountain Research and Development, 28(1), 72–80.

    Google Scholar 

  • Tegegne, Y. T., Lindner, M., Fobissie, K., & Kanninen, M. (2016). Evolution of drivers of deforestation and forest degradation in the Congo Basin forests: exploring possible policy options to address forest loss. Land Use Policy, 51, 312–324.

    Google Scholar 

  • Teketay, D. (2001). Deforestation, wood famine, and environmental degradation in Ethiopia’s Highland ecosystems: urgent need for action. Northeast African Studies, 8(1), 53–76.

    Google Scholar 

  • Tekle, K., & Hedlund, L. (2000). Land cover changes between 1958 and 1986 in Kalu district, southern Wello, Ethiopia. Mountain Research and Development, 20(1), 42–51.

    Google Scholar 

  • Tolessa, T., Senbeta, F., & Kidane, M. (2016). Landscape composition and configuration in the central highlands of Ethiopia. Ecology and Evolution, 6, 7409–7421.

    Google Scholar 

  • Tolessa, T., Senbeta, F., & Kidane, M. (2017a). The impact of land use/land cover change on ecosystem services in the central highlands of Ethiopia. Ecosystem Services, 23, 47–54.

    Google Scholar 

  • Tolessa, T., Senbeta, F., & Abebe, T. (2017b). Land use/land cover analysis and ecosystem services valuation in the central highlands of Ethiopia. Forests, Trees and Livelihoods, 26(2), 111–123.

    Google Scholar 

  • Tolessa, T., Gessese, H., Tolera, M., & Kidane, M. (2018). Changes in ecosystem service values in response to changes in landscape composition in the central highlands of Ethiopia. Environmental Processes, 5(3), 483–501.

    CAS  Google Scholar 

  • Van der Ploeg, S., De Groot, R. S., & Wang, Y. (2010). The TEEB valuation database: overview of structure, data and results. Wageningen: Foundation for Sustainable Development.

  • Verhagen, W., Van Teeffelen, A. J. A., Compagnucci, A. B., Poggio, L., Gimona, A., & Verburg, P. H. (2016). Effects of landscape configuration on mapping ecosystem service capacity: a review of evidence and a case study in Scotland. Landscape Ecology, 31, 1457–1479. https://doi.org/10.1007/s10980-016-0345-2.

    Article  Google Scholar 

  • Wade, T. G., Riitters, K. H., Wickham, J. D., & Jones, K. B. (2003). Distribution and causes of global forest fragmentation. Conservation Ecology, 7(2), 7 http://www.consecol.org/vol7/iss2/art7. Accessed 5 Aug 2018.

  • Wang, J., & Yang, X. (2012). A hierarchical approach to forest landscape pattern characterization. Environmental Management, 49, 64–81.

    Google Scholar 

  • Wang, X., Dong, X., Liu, H., Wei, H., Fan, W., Lu, N., Xu, Z., Ren, J., & Xing, K. (2017). Linking land use change, ecosystem services and human well-being: a case study of the Manas River basin of Xinjiang, China. Ecosystem Services, 27, 113–123.

    Google Scholar 

  • Wondrade, N., Dick, Ø. B., & Tveite, H. (2014). GIS based mapping of land cover changes utilizing multi-temporal remotely sensed image data in Lake Hawassa watershed, Ethiopia. Environmental Monitoring and Assessment, 186(3), 1765–1780.

    Google Scholar 

  • Xu, Z., Fan, W., Wei, H., Zhang, P., Ren, J., Gao, Z., Ulgiati, S., Kong, W., & Dong, X. (2019). Evaluation and simulation of the impact of land use change on ecosystem services based on a carbon flow model: a case study of the Manas River basin of Xinjiang, China. Science of the Total Environment, 652, 117–133.

    Google Scholar 

  • Yushanjiang, A., Zhang, F., Yu, H., & Kung, H. (2018). Quantifying the spatial correlations between landscape pattern and ecosystem service value: a case study in Ebinur Lake Basin, Xinjiang, China. Ecological Engineering, 113, 94–104.

    Google Scholar 

  • Zak, M. R., Cabido, M., Cáceres, D., & Díaz, S. (2008). What drives accelerated land cover change in central Argentina? Synergistic consequences of climatic, socioeconomic, and technological factors. Environmental Management, 42, 181–189.

    Google Scholar 

  • Zhang, Z., & Gao, J. (2016). Linking landscape structures and ecosystem service value using multivariate regression analysis: a case study of the Chaohu Lake Basin, China. Environment and Earth Science, 75, 3. https://doi.org/10.1007/s12665-015-4862-0.

    Article  Google Scholar 

  • Zhang, F., Yushanjiang, A., & Jing, Y. (2019). Assessing and predicting changes of the ecosystem service values based on land use/cover change in Ebinur Lake Wetland National Nature Reserve, Xinjiang, China. Science of the Total Environment, 656, 1133–1144.

    CAS  Google Scholar 

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We appreciate the anonymous reviewers and editors for their constructive comments.

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Muleta, T.T., Biru, M.K. Human modified landscape structure and its implication on ecosystem services at Guder watershed in Ethiopia. Environ Monit Assess 191, 295 (2019). https://doi.org/10.1007/s10661-019-7403-6

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